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Guberman, A.

Publications and source records attributed to Guberman, A..

2 recordsLinked to original sources

Metabolic Maturation Unveils Left Ventricular Identity in WNT ON/OFF Human Pluripotent Stem Cell-Derived Cardiomyocytes

Deriving high-purity mature left ventricular (LV) cardiomyocytes (CMs) from human pluripotent stem cells (hPSCs) is a priority for cardiovascular research and for future therapeutic applications. Small-molecule WNT modulation (WNT ON/OFF) is currently the predominant differentiation method; however, a critical discordance exists regarding its cardiac subtype outcome. While lineage tracing suggests a First Heart Field (FHF) bias, phenotypic characterizations report significant heterogeneity regarding definitive ventricular markers, leading to controversy about the cardiac subtypes generated by this method. Here, we demonstrate that this apparent heterogeneity is a result of CM immaturity. Using single-cell protein analysis, we first show that WNT ON/OFF generates an NKX2.5+ progenitor pool that robustly co-expresses HAND1, confirming uniform FHF specification regardless of differentiation efficiency. We then demonstrate that the CM population negative for the ventricular marker MYL2 observed at early differentiation timepoints mostly represents immature LV cardiomyocytes that have not yet acquired their definitive phenotype. By implementing a targeted metabolic maturation regime, we unlocked this identity, achieving 95% MYL2+/HAND1+/TBX5+ LV CMs by day 38, substantially earlier and with higher chamber-specific purity than previously reported. This phenotypic resolution was accompanied by advanced structural maturation, including sarcomeric protein isoform switching, multinucleation, and notably, the assembly of polarized XIRP2+ intercalated discs, a hallmark of postnatal CM maturation not previously described in 2D differentiations. Validated across three independent hPSC lines, these findings provide the field with a rapid, high-fidelity platform for generating pure mature LV cardiomyocytes for disease modeling and therapeutic research.

developmental biology↗

The transcription factor OCT6 promotes the dissolution of the naive pluripotent state by repressing Nanog and activating a formative state gene regulatory network.

Animal development relies on complex gene regulatory networks (GRNs) that govern the nearly irreversible changes that occur during cell differentiation. In this work we aimed to determine key transcription factors (TFs) associated with the dissolution of the naive pluripotent state and the acquisition of a formative identity. We identified OCT6 as one of the earliest TFs induced during the onset of mouse embryonic stem cell (mESCs) differentiation. To investigate its role, we generated an Oct6 knockout mESC line, which failed to acquire the characteristic cell morphology associated with the formative state. Transcriptome analysis of differentiating cells revealed nearly 300 differentially expressed genes compared to wild-type cells, including pluripotency TFs Nanog, Klf2, Nr5a2, Prdm14, and Esrrb, that failed to correctly downregulate. Notably, premature expression of OCT6 in naive cells triggered a rapid morphological transformation mirroring differentiation, accompanied by self-induction of Oct6 and expression of TFs such as Sox3, Zic2/3, Foxp1, as well as the formative genes Dnmt3A and FGF5. Strikingly, the majority of OCT6 expressing cells did not express NANOG. Gene expression and single molecule RNA-FISH analysis confirmed that this regulation was at the transcriptional level. Collectively, our results establish OCT6 as a key TF in the dissolution of the naive pluripotent state and support a model where Oct6 and Nanog form a double negative feedback loop which could act as a toggle switch important for the transition to the formative state. HighlightsO_LIOct6 is rapidly induced as mESCs exit ground state pluripotency. C_LIO_LILoss of OCT6 negatively affects the transition to formative pluripotency. C_LIO_LIPremature expression of OCT6 in mESCs is sufficient to induce a formative-like phenotype. C_LIO_LIOCT6 and NANOG repress each other forming a double negative feedback loop. C_LI

developmental biology↗